김선이 교수
Sun-i Kim
이화여자대학교 환경공학과 · 공학
연구실 소개
김선이 교수의 연구실은 전기화학적 탈염 및 리튬 회수 기술을 핵심으로 하며, 특히 낮은 농도의 리튬 이온을 고효율로 선택적 추출할 수 있는 전기화학적 시스템 개발에 주력하고 있습니다. 포화된 다공성 탄소 전극과 금속 유기 프레임워크(MOF)를 조합한 비막막 비대칭 CDI 기술을 통해 이온 제거 용량과 전기적 효율을 극대화하는 데 성공했으며, 해수나 폐수에서의 리튬과 유해 유기물 동시 회수 기술도 개발하고 있습니다. 특히 λ-MnO₂ 전극을 활용한 리튬 선택적 흡착 거동 분석을 통해 실생활 조건에서의 전기화학적 거동을 규명하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Based on a porous carbon electrode, capacitive deionization (CDI) is a promising desalination technology in which ions are harvested and stored in an electrical double layer.
Abstract Capacitive deionization (CDI) that engages porous carbon electrodes constitutes one of the well‐established energy‐efficient desalination methods. However, improvement in desalination performance, including ion removal capacity, ion removal rate, and charge efficiency remains requisite for a wide range of applications. Herein, an ion‐exchange membrane‐free asymmetric CDI is introduced by pairing a metal organic framework (MOF), namely, K 0.03 Cu[Fe(CN) 6 ] 0.65 ·0.43H 2 O and porous car
A novel electrochemical system comprising λ-MnO<sub>2</sub> and BDD is proposed for simultaneous recovery of lithium and decomposition of organic pollutants.
Due to the steep increase in the use of mobile electronics and electric vehicles, there has been a dramatic rise in the global lithium consumption. Although seawater is considered as an ideal future source of lithium, technological advances are necessary to ensure the economic feasibility of lithium recovery from seawater because the concentration and portion of Li+ are extremely low in seawater. Especially, battery-based electrochemical systems for lithium recovery have been considered as promi
CO 2 is removed from oceanwater acidified during chloride-mediated electrochemically modulated reaction of bismuth electrodes.
Recently developed electrochemical lithium recovery systems, whose operation principle mimics that of lithium-ion battery, enable selective recovery of lithium from source waters with a wide range of lithium ions (Li<sup>+</sup>) concentrations; however, physicochemical behaviors of the key component-Li<sup>+</sup>-selective electrode-in realistic operation conditions have been poorly understood. Herein, we report an investigation on a λ-MnO<sub>2</sub> electrode during the electrochemical lithi
Owing to the rapid growth of the global industry, the importance of securing the supply of resources has increased dramatically. Magnesium is a metallic resource that is in large and steady demands. Current processes for Mg production and refinement require large energy consumption, and additionally, there are environmental issues combined with the mining process. Herein, we report an electrochemical system that selectively recovers Mg 2+ from mixture solutions, potentially targeting the applica
In recent years, electrochemical desalination and resource recovery processes have gained significant attention as means of utilizing waters, wherein the majority of anionic species are chloride ions. There have been research efforts to develop high‐performance electrode materials for the chloride uptake. Silver with extremely fast kinetics is an ideal option, but the cost and stability issues are yet to be resolved. Herein, silver nanoparticles with nitrogen‐doped carbon (NC) shells are develop
This study examines the consumer behavior towards service satisfaction and loyalty in the wedding service market when differentiated services were provided through a market segmentation that includes products, prices, and channels for service choices. This study uses the questionnaire research method to compare the wedding service consumer satisfaction between Korea and Japan. As for married couples, the convenience of transportation and name-recognition were the most important considerations am
High Resolution Image Download MS PowerPoint Slide Recent years have witnessed the importance of securing the supply of metallic resources. Magnesium is the lightest structured metal on earth and is widely adopted in weight-sensitive applications and next-generation energy storage techniques. However, magnesium is currently produced by an energy-intensive process or by heavy use of chemicals, and there is a need to develop a new route to address these issues. In this study, electrochemical separ
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